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Exchange Bias in FePt-FePt3 Thin Films by Controlled Phase Transition of Blended Nanoparticle Building Blocks

机译:混合纳米粒子构建块的受控相变

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Nanostructured composite thin films showing magnetic exchange coupling at the material interface have attracted great interest for the development of electronic components such as spin-valves. Besides the commonly performed fabrication of multilayer systems, the utilization of nanoparticle building blocks holds great potential for thin films with tailored magnetic properties and allows the facile but controlled combination of materials with complementary magnetic characteristics. In this work, we present the use of prefabricated highly crystalline iron platinum (fcc-FePt) and iron oxide (FexOy) nanoparticles for the preparation of nanocomposite thin films with varying compositions by wet processing from mixed dispersions. The resulting multiphase coatings showed high homogeneity, low surface roughness, and superparamagnetic behavior. By the variation of the amount of incorporated iron oxide, a precise adjustment of the magnetization at high field strength could be achieved. Furthermore, calcination under inert gas atmosphere resulted in a controlled phase transition of the magnetic phases and thus, in purely metallic coatings composed of ferromagnetic fct-FePt and antiferromagnetic fcc-FePt3, a decrease in surface roughness as well as high magnetic coercivity at room temperature. Field-cooling below the Neel temperature of fcc-FePt3 led to an exchange bias effect with a strong increase in coercivity and the characteristic hysteresis shift. In comparison to the literature, our nanocomposite thin films showed fully ordered phases without the occurrence of phase impurities, a distinctly higher coercivity, and an exchange bias shift of 38.7 mT.
机译:纳米结构复合薄膜显示在材料界面处的磁交换耦合引起了对旋转阀等电子元件的发展感兴趣。除了常用的多层系统的制造之外,纳米粒子构建块的利用率对具有定制磁性的薄膜具有很大的潜力,并且允许容纳但是具有互补磁特性的材料组合。在这项工作中,我们介绍了预制的高结晶铁铂(FCC-FEPT)和氧化铁(Fexoy)纳米颗粒用于制备具有不同组合物的纳米复合薄膜,通过混合分散体湿法加工。所得的多相涂层显示出高均匀性,低表面粗糙度和超顺磁性行为。通过掺入氧化铁量的变化,可以实现在高场强度下进行磁化的精确调整。此外,惰性气体气氛下的煅烧导致磁相的受控相转变,因此,在由铁磁性FCT-rep-repl-repl和反铁磁FCC-FEPT3组成的纯金属涂层中,表面粗糙度的降低以及室温下的高磁矫顽力。低于FCC-FEPT3的NEER温度的现场冷却导致交换偏置效应,矫顽力和特征滞后偏移的强烈增加。与文献相比,我们的纳米复合材料薄膜显示出完全有序的相,而不发生相杂质,明显更高的矫顽力,以及38.7mt的交换偏置偏移。

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